Constant-Wall-Temperature Nusselt Number in Micro and Nano-Channels1
- 21 August 2001
- journal article
- Published by ASME International in Journal of Heat Transfer
- Vol. 124 (2) , 356-364
- https://doi.org/10.1115/1.1447931
Abstract
We investigate the constant-wall-temperature convective heat-transfer characteristics of a model gaseous flow in two-dimensional micro and nano-channels under hydrodynamically and thermally fully developed conditions. Our investigation covers both the slip-flow regime 0⩽Kn⩽0.1, and most of the transition regime 0.1<Kn⩽10, where Kn, the Knudsen number, is defined as the ratio between the molecular mean free path and the channel height. We use slip-flow theory in the presence of axial heat conduction to calculate the Nusselt number in the range 0⩽Kn⩽0.2, and a stochastic molecular simulation technique known as the direct simulation Monte Carlo (DSMC) to calculate the Nusselt number in the range 0.02<Kn<2. Inclusion of the effects of axial heat conduction in the continuum model is necessary since small-scale internal flows are typically characterized by finite Peclet numbers. Our results show that the slip-flow prediction is in good agreement with the DSMC results for Kn⩽0.1, but also remains a good approximation beyond its expected range of applicability. We also show that the Nusselt number decreases monotonically with increasing Knudsen number in the fully accommodating case, both in the slip-flow and transition regimes. In the slip-flow regime, axial heat conduction is found to increase the Nusselt number; this effect is largest at Kn=0 and is of the order of 10 percent. Qualitatively similar results are obtained for slip-flow heat transfer in circular tubes.Keywords
This publication has 34 references indexed in Scilit:
- Slip-flow heat transfer in circular tubesInternational Journal of Heat and Mass Transfer, 2000
- Flows Induced by Temperature Fields in a Rarefied Gas and their Ghost Effect on the Behavior of a Gas in the Continuum LimitAnnual Review of Fluid Mechanics, 2000
- REPORT: A MODEL FOR FLOWS IN CHANNELS, PIPES, AND DUCTS AT MICRO AND NANO SCALESMicroscale Thermophysical Engineering, 1999
- The Graetz problem extended to slip-flowInternational Journal of Heat and Mass Transfer, 1997
- Gas flow in micro-channelsJournal of Fluid Mechanics, 1995
- Slip length in a dilute gasPhysical Review A, 1992
- A convergence proof for Bird's direct simulation Monte Carlo method for the Boltzmann equationJournal of Statistical Physics, 1992
- Temperature jump and thermal creep slip: Rigid sphere gasPhysics of Fluids A: Fluid Dynamics, 1989
- Approximation of the eigenvalues for heat transfer in laminar tube slip flowAIAA Journal, 1964
- Laminar Heat Transfer in Tubes Under Slip-Flow ConditionsJournal of Heat Transfer, 1962